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My Views on “Eden against the Colossus” – Ten Years Later – Article by G. Stolyarov II

My Views on “Eden against the Colossus” – Ten Years Later – Article by G. Stolyarov II

The New Renaissance Hat
G. Stolyarov II
June 8, 2013
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Not long after the release of the Second Edition of my 2003-2004 science-fiction mystery novel Eden against the Colossus, I was asked whether any of the views I expressed in the novel had changed since then, and, if so, to what extent.

I still strongly adhere to most of the fundamental philosophical principles expressed in Eden against the Colossus: the existence of an objective reality, the necessity for reason and rigorous inquiry in discovering it, the supreme value of the individual, the virtue of enlightened self-interest, and the immense benefits of technological progress for improving, elevating, and extending the human condition.

In the introduction to the Second Edition I discussed how, in retrospect, the future society described in Eden against the Colossus seems like a pessimistic scenario of how far humanity would progress technologically during the 750 years since the writing of the novel (for instance, in the lack of autonomous artificial intelligence or indefinite life extension – through there are many advanced robots and the average lifespan has increased by perhaps a factor of three in the world initially presented in the novel). This is a world very much characterized by a stark good-versus-evil conflict – that of the individualists/technoprogressives versus the Malthusians/Neo-Luddites. In the novel I occasionally use the term “environmentalists” to describe the Malthusians/Neo-Luddites; today, I would make a subtler distinction between those environmentalists who favor free-market and/or technological solutions to the problems they perceive, and those who see the only solutions as a “return to Nature” and a curtailment of human population. My quarrel is, and has fundamentally always been, only with those environmentalists who seek to reject or limit technological progress – particularly those who would use force to impose their preferences on others. Today I would be more careful to describe my views as anti-Luddite, rather than anti-environmentalist, in order to recognize as possible allies those environmentalists who would embrace technology with incidental benefits such as the reduction of pollution or the more efficient use of resources.

Were I writing the novel today, the society which results as the outcome of the individualist/technoprogressive vision would look quite different as well. The Intergalactic Protectorate is a libertarian system, but a highly centralized one nonetheless. Through its storyline though not through its explicit philosophical ideas, Eden against the Colossus illustrates the vulnerabilities of such a system and the ease of turning the machinery of the Protectorate against the very ideals it is supposed to protect. This is true, I now realize, of any large, centralized institution – public or private, controlled by virtuous people, or by mediocrities or crooks. As an example of this, one needs only to consider how the vast, largely voluntary centralization of information on the Internet – during the age of dominant providers of social-networking, search, and content-hosting services – has enabled sweeping surveillance of virtually all Americans by the National Security Agency through “backdoors” into the systems of the dominant Internet companies. No one person – and no one institution – can be the sole effective guardian of liberty. On the other hand, a society filled with political experiments, as well as experiments in decentralized technologies applied to every area of life, would be much more robust against usurpations of power and incursions against individual rights. Undertakings such as seasteading, a decentralized Meshnet, and Bitcoin have intrigued me in recent years as ways to empower individuals by reducing their dependence on large institutions and decreasing the number of ways by which power asymmetry enables those with ill intentions to get away with inconveniencing or outright oppressing innocent people.

A truly libertarian future will not resemble today’s corporate America on an intergalactic scale, only with considerably less regulation and a more stringently written Constitution enforced by a fourth branch of government possessing negative power only – essentially, the society portrayed in Eden against the Colossus. If humanity is to achieve an intergalactic presence, it will likely be in the form of hundreds of thousands of diverse and autonomous networks of people, largely possessing fluid social and political structures. The balance of power in such a world would greatly favor individuals who are hyperempowered by technology. Furthermore, if technology is to have the ability to radically enhance human intelligence and reasoning, then many of the philosophical disputes that have recurred throughout history may, in future eras, be settled by a more rigorous and nuanced framing of the ideas under consideration. The intellectual conflicts of the future are not likely to be of the hitherto-encountered “capitalist versus socialist” or “technoprogressive versus environmentalist” variety – since the evolution of technology and culture, as well as the shifting dynamics of human societies, will raise new issues of focus which will lead to interesting and unanticipated alignments of persons of various perspectives. It would be entirely possible for some issues to unite erstwhile opponents – as principled libertarians and principled socialists today both detest crony corporatism, or as technoprogressives and some technology-friendly environmentalists today support nuclear power and organisms bioengineered to clean up pollution.

With regard to the personal lives of the characters of Eden against the Colossus, my view today no longer necessitates a glorification of ceaseless work, though productivity remains important to me without a doubt. The enjoyment of the fruits of productive work – and the ability to increase the proportion of one’s time spent in that enjoyment without diminishing one’s productivity – are among the outcomes made possible by technological progress. Such outcomes are insufficiently illustrated in Eden against the Colossus. Moreover, were I to write the novel today, I would have more greatly focused on the ability of a technological society to provide individuals with the opportunity to balance work, leisure, relationships, and a broad awareness of numerous areas of existence.

Along with all of these qualifying statements, however, I nonetheless emphasize my view that the fundamental essence of the conflict depicted in Eden against the Colossus is still a valid and vital subject for contemplation and for consideration of its relevance to our lives. As long as humankind continues to exist in anything resembling its present form, two fundamental motivations – the desire for improvement of the human condition and the desire for restrictive control that would suppress efforts to alter the status quo – will continue to be at odds, in whatever unforeseeable future embodiments they might come to possess. Perhaps sufficient technological progress will shift the balance of human biology, environment, and incentives further away from the command-and-control motive and closer toward the pure motives of amelioration and progress. One can certainly hope.

Immortality: Bio or Techno? – Article by Franco Cortese

Immortality: Bio or Techno? – Article by Franco Cortese

The New Renaissance Hat
Franco Cortese
June 5, 2013
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This essay is the eleventh and final chapter in Franco Cortese’s forthcoming e-book, I Shall Not Go Quietly Into That Good Night!: My Quest to Cure Death, published by the Center for Transhumanity. The first ten chapters were previously published on The Rational Argumentator under the following titles:
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I Was a Techno-Immortalist Before I Came of Age

From the preceding chapters in this series, one can see that I recapitulated many notions and conclusions found in normative Whole-Brain Emulation. I realized that functional divergence between a candidate functional-equivalent and its original, through the process of virtual or artificial replication of environmental stimuli so as to coordinate their inputs, provides an experimental methodology for empirically validating the sufficiency and efficacy of different approaches. (Note, however, that such tests could not be performed to determine which NRU-designs or replication-approaches would preserve subjective-continuity, if the premises entertained during later periods of my project—that subjective-continuity may require a sufficient degree of operational “sameness”, and not just a sufficient degree of functional “sameness”—are correct.) I realized that we would only need to replicate in intensive detail and rigor those parts of our brain manifesting our personalities and higher cognitive faculties (i.e., the neocortex), and could get away with replicating at lower functional resolution the parts of the nervous system dealing with perception, actuation, and feedback between perception and actuation.

I read Eric Drexler’s Engines of Creation and imported the use of nanotechnology to facilitate both functional-replication (i.e., the technologies and techniques needed to replicate the functional and/or operational modalities of existing biological neurons) and the intensive, precise, and accurate scanning necessitated thereby. This was essentially Ray Kurzweil’s and Robert Freitas’s approach to the technological infrastructure needed for mind-uploading, as I discovered in 2010 via The Singularity is Near.

My project also bears stark similarities with Dmitry Itskov’s Project Avatar. My work on conceptual requirements for transplanting the biological brain into a fully cybernetic body — taking advantage of the technological and methodological infrastructures already in development for use in the separate disciplines of robotics, prosthetics, Brain-Computer Interfaces and sensory-substitution to facilitate the operations of the body — is a prefigurement of his Phase 1. My later work in approaches to functional replication of neurons for the purpose of gradual substrate replacement/transfer and integration also parallel his later phases, in which the brain is gradually replaced with an equivalent computational emulation.

The main difference between the extant Techno-Immortalist approaches, however, is my later inquiries into neglected potential bases for (a) our sense of experiential subjectivity (the feeling of being, what I’ve called immediate subjective-continuity)—and thus the entailed requirements for mental substrates aiming to maintain or attain such immediate subjectivity—and (b) our sense of temporal subjective-continuity (the feeling of being the same person through a process of gradual substrate-replacement—which I take pains to remind the reader already exists in the biological brain via the natural biological process of molecular turnover, which I called metabolic replacement throughout the course of the project), and, likewise, requirements for mental substrates aiming to maintain temporal subjective-continuity through a gradual substrate-replacement/transfer procedure.

In this final chapter, I summarize the main approaches to subjective-continuity thus far considered, including possible physical bases for its current existence and the entailed requirements for NRU designs (that is, for Techno-Immortalist approaches to indefinite-longevity) that maintain such physical bases of subjective-continuity. I will then explore why “Substrate-Independent Minds” is a useful and important term, and try to dispel one particularly common and easy-to-make misconception resulting from it.

Why Should We Worry about SubjectiveContinuity?

This concern marks perhaps the most telling difference between my project and normative Whole-Brain Emulation. Instead of stopping at the presumption that functional equivalence correlates with immediate subjective-continuity and temporal subjective-continuity, I explored several features of neural operation that looked like candidates for providing a basis of both types of subjective-continuity, by looking for those systemic properties and aspects that the biological brain possesses and other physical systems don’t. The physical system underlying the human mind (i.e., the brain) possesses experiential subjectivity; my premise was that we should look for properties not shared by other physical systems to find a possible basis for the property of immediate subjective-continuity. I’m not claiming that any of the aspects and properties considered definitely constitute such a basis; they were merely the avenues I explored throughout my 4-year quest to conquer involuntary death. I do claim, however, that we are forced to conclude that some aspect shared by the individual components (e.g., neurons) of the brain and not shared by other types of physical systems forms such a basis (which doesn’t preclude the possibility of immediate subjective-continuity being a spectrum or gradient rather than a definitive “thing” or process with non-variable parameters), or else that immediate subjective continuity is a normal property of all physical systems, from atoms to rocks.

A phenomenological proof of the non-equivalence of function and subjectivity or subjective-experientiality is the physical irreducibility of qualia – that we could understand in intricate detail the underlying physics of the brain and sense-organs, and nowhere derive or infer the nature of the qualia such underlying physics embodies. To experimentally verify which approaches to replication preserve both functionality and subjectivity would necessitate a science of qualia. This could be conceivably attempted through making measured changes to the operation or inter-component relations of a subject’s mind (or sense organs)—or by integrating new sense organs or neural networks—and recording the resultant changes to his experientiality—that is, to what exactly he feels. Though such recordings would be limited to his descriptive ability, we might be able to make some progress—e.g., he could detect the generation of a new color, and communicate that it is indeed a color that doesn’t match the ones normally available to him, while still failing to communicate to others what the color is like experientially or phenomenologically (i.e., what it is like in terms of qualia). This gets cruder the deeper we delve, however. While we have unchanging names for some “quales” (i.e., green, sweetness, hot, and cold), when it gets into the qualia corresponding with our perception of our own “thoughts” (which will designate all non-normatively perceptual experiential modalities available to the mind—thus, this would include wordless “daydreaming” and exclude autonomic functions like digestion or respiration), we have both far less precision (i.e., fewer words to describe) and less accuracy (i.e., too many words for one thing, which the subject may confuse; the lack of a quantitative definition for words relating to emotions and mental modalities/faculties seems to ensure that errors may be carried forward and increase with each iteration, making precise correlation of operational/structural changes with changes to qualia or experientiality increasingly harder and more unlikely).

Thus whereas the normative movements of Whole-Brain Emulation and Substrate-Independent Minds stopped at functional replication, I explored approaches to functional replication that preserved experientiality (i.e., a subjective sense of anything) and that maintained subjective-continuity (the experiential correlate of feeling like being yourself) through the process of gradual substrate-transfer.

I do not mean to undermine in any way Whole-Brain Emulation and the movement towards Substrate-Independent Minds promoted by such people as Randal Koene via, formerly, his minduploading.org website and, more recently, his Carbon Copies project, Anders Sandberg and Nick Bostrom through their WBE Roadmap, and various other projects on connectomes. These projects are untellably important, but conceptions of subjective-continuity (not pertaining to its relation to functional equivalence) are beyond their scope.

Whether or not subjective-continuity is possible through a gradual-substrate-replacement/transfer procedure is not under question. That we achieve and maintain subjective-continuity despite our constituent molecules being replaced within a period of 7 years, through what I’ve called “metabolic replacement” but what would more normatively be called “molecular-turnover” in molecular biology, is not under question either. What is under question is (a) what properties biological nervous systems possess that could both provide a potential physical basis for subjective-continuity and that other physical systems do not possess, and (b) what the design requirements are for approaches to gradual substrate replacement/transfer that preserve such postulated sources of subjective-continuity.

Graduality

This was the first postulated basis for preserving temporal subjective-continuity. Our bodily systems’ constituent molecules are all replaced within a span of 7 years, which provides empirical verification for the existence of temporal subjective-continuity through gradual substrate replacement. This is not, however, an actual physical basis for immediate subjective-continuity, like the later avenues of enquiry. It is rather a way to avoid causing externally induced subjective-discontinuity, rather than maintaining the existing biological bases for subjective-discontinuity. We are most likely to avoid negating subjective-continuity through a substrate-replacement procedure if we try to maintain the existing degree of graduality (the molecular-turnover or “metabolic-replacement” rate) that exists in biological neurons.

The reasoning behind concerns of graduality also serves to illustrate a common misconception created by the term “Substrate-Independent Minds”. This term should denote the premise that mind can be instantiated on different types of substrate, in the way that a given computer program can run of different types of computational hardware. It stems from the scientific-materialist (a.k.a metaphysical-naturalist) claim that mind is an emergent process not reducible to its isolated material constituents, while still being instantiated thereby. The first (legitimate) interpretation is a refutation against all claims of metaphysical vitalism or substance dualism. The term should not denote the claim that since mind because is software, we can thus send our minds (say, encoded in a wireless signal) from one substrate to another without subjective-discontinuity. This second meaning would incur the emergent effect of a non-gradual substrate-replacement procedure (that is, the wholesale reconstruction of a duplicate mind without any gradual integration procedure). In such a case one stops all causal interaction between components of the brain—in effect putting it on pause. The brain is now static. This is even different than being in an inoperative state, where at least the components (i.e., neurons) still undergo minor operational fluctuations and are still “on” in an important sense (see “Immediate Subjective-Continuity” below), which is not the case here. Beaming between substrates necessitates that all causal interaction—and thus procedural continuity—between software-components is halted during the interval of time in which the information is encoded, sent wirelessly, and subsequently decoded. It would be reinstantiated upon arrival in the new substrate, yes, but not without being put on pause in the interim. The phrase “Substrate-Independent Minds” is an important and valuable one and should be indeed be championed with righteous vehemence—but only in regard to its first meaning (that mind can be instantiated on various different substrates) and not its second, illegitimate meaning (that we ourselves can switch between mental substrates, without any sort of gradual-integration procedure, and still retain subjective-continuity).

Later lines of thought in this regard consisted of positing several sources of subjective-continuity and then conceptualizing various different approaches or varieties of NRU-design that would maintain these aspects through the gradual-replacement procedure.

Immediate Subjective-Continuity

This line of thought explored whether certain physical properties of biological neurons provide the basis for subjective-continuity, and whether current computational paradigms would need to possess such properties in order to serve as a viable substrate-for-mind—that is, one that maintains subjective-continuity. The biological brain has massive parallelism—that is, separate components are instantiated concurrently in time and space. They actually exist and operate at the same time. By contrast, current paradigms of computation, with a few exceptions, are predominantly serial. They instantiate a given component or process one at a time and jump between components or processes so as to integrate these separate instances and create the illusion of continuity. If such computational paradigms were used to emulate the mind, then only one component (e.g., neuron or ion-channel, depending on the chosen model-scale) would be instantiated at a given time. This line of thought postulates that computers emulating the mind may need to be massively parallel in the same way that as the biological brain is in order to preserve immediate subjective-continuity.

Procedural Continuity

Much like the preceding line of thought, this postulates that a possible basis for temporal subjective-continuity is the resting membrane potential of neurons. While in an inoperative state—i.e., not being impinged by incoming action-potentials, or not being stimulated—it (a) isn’t definitively off, but rather produces a baseline voltage that assures that there is no break (or region of discontinuity) in its operation, and (b) still undergoes minor fluctuations from the baseline value within a small deviation-range, thus showing that causal interaction amongst the components emergently instantiating that resting membrane potential (namely ion-pumps) never halts. Logic gates on the other hand do not produce a continuous voltage when in an inoperative state. This line of thought claims that computational elements used to emulate the mind should exhibit the generation of such a continuous inoperative-state signal (e.g., voltage) in order to maintain subjective-continuity. The claim’s stronger version holds that the continuous inoperative-state signal produced by such computational elements undergo minor fluctuations (i.e., state-transitions) allowed within the range of the larger inoperative-state signal, which maintains causal interaction among lower-level components and thus exhibits the postulated basis for subjective-continuity—namely procedural continuity.

Operational Isomorphism

This line of thought claims that a possible source for subjective-continuity is the baseline components comprising the emergent system instantiating mind. In physicality this isn’t a problem because the higher-scale components (e.g., single neurons, sub-neuron components like ion-channels and ion-pumps, and individual protein complexes forming the sub-components of an ion-channel or pump) are instantiated by the lower-level components. Those lower-level components are more similar in terms of the rules determining behavior and state-changes. At the molecular scale, the features determining state-changes (intra-molecular forces, atomic valences, etc.) are the same. This changes as we go up the scale—most notably at the scale of high-level neural regions/systems. In a software model, however, we have a choice as to what scale we use as our model-scale. This postulated source of subjective-continuity would entail that we choose as our model-scale one in which the components of that scale have a high degree of this property (operational isomorphism—or similarity) and that we not choosing a scale at which the components have a lesser degree of this property.

Operational Continuity

This line of thought explored the possibility that we might introduce operational discontinuity by modeling (i.e., computationally instantiating) not the software instantiated by the physical components of the neuron, but instead those physical components themselves—which for illustrative purposes can be considered as the difference between instantiating software and instantiating physics of the logic gates giving rise to the software. Though the software would necessarily be instantiated as a vicarious result of computationally instantiating its biophysical foundation rather than the software directly, we may be introducing additional operational steps and thus adding an unnecessary dimension of discontinuity that needlessly jeopardizes the likelihood of subjective-continuity.

These concerns are wholly divorced from functionalist concerns. If we disregarded these potential sources of subjective-continuity, we could still functionally-replicate a mind in all empirically-verifiable measures yet nonetheless fail to create minds possessing experiential subjectivity. Moreover, the verification experiments discussed in Part 2 do provide a falsifiable methodology for determining which approaches best satisfy the requirements of functional equivalence. They do not, however, provide a method of determining which postulated sources of subjective-continuity are true—simply because we have no falsifiable measures to determine either immediate or temporal subjective-discontinuity, other than functionality. If functional equivalence failed, it would tell us that subjective-continuity failed to be maintained. If functional-equivalence was achieved, however, it doesn’t necessitate that subjective-continuity was maintained.

Bio or Cyber? Does It Matter?

Biological approaches to indefinite-longevity, such as Aubrey de Grey’s SENS and Michael Rose’s Evolutionary Selection for Longevity, among others, have both comparative advantages and drawbacks. The chances of introducing subjective-discontinuity are virtually nonexistent compared to non-biological (which I will refer to as Techno-Immortalist) approaches. This makes them at once more appealing. However, it remains to be seen whether the advantages of the techno-immortalist approach supersede their comparative dangers in regard to their potential to introduce subjective-discontinuity. If such dangers can be obviated, however, it has certain potentials which Bio-Immortalist projects lack—or which are at least comparatively harder to facilitate using biological approaches.

Perhaps foremost among these potentials is the ability to actively modulate and modify the operations of individual neurons, which, if integrated across scales (that is, the concerted modulation/modification of whole emergent neural networks and regions via operational control over their constituent individual neurons), would allow us to take control over our own experiential and functional modalities (i.e., our mental modes of experience and general abilities/skills), thus increasing our degree of self-determination and the control we exert over the circumstances and determining conditions of our own being. Self-determination is the sole central and incessant essence of man; it is his means of self-overcoming—of self-dissent in a striving towards self-realization—and the ability to increase the extent of such self-control, self-mastery, and self-actualization is indeed a comparative advantage of techno-immortalist approaches.

To modulate and modify biological neurons, on the other hand, necessitates either high-precision genetic engineering, or likely the use of nanotech (i.e., NEMS), because whereas the proposed NRUs already have the ability to controllably vary their operations, biological neurons necessitate an external technological infrastructure for facilitating such active modulation and modification.

Biological approaches to increased longevity also appear to necessitate less technological infrastructure in terms of basic functionality. Techno-immortalist approaches require precise scanning technologies and techniques that neither damage nor distort (i.e., affect to the point of operational and/or functional divergence from their normal in situ state of affairs) the features and properties they are measuring. However, there is a useful distinction to be made between biological approaches to increased longevity, and biological approaches to indefinite longevity. Aubrey de Grey’s notion of Longevity Escape Velocity (LEV) serves to illustrate this distinction. With SENS and most biological approaches, he points out that although remediating certain biological causes of aging will extend our lives, by that time different causes of aging that were superseded (i.e., prevented from making a significant impact on aging) by the higher-impact causes of aging may begin to make a non-negligible impact. Aubrey’s proposed solution is LEV: if we can develop remedies for these approaches within the amount of time gained by the remediation of the first set of causes, then we can stay on the leading edge and continue to prolong our lives. This is in contrast to other biological approaches, like Eric Drexler’s conception of nanotechnological cell-maintenance and cell-repair systems, which by virtue of being able to fix any source of molecular damage or disarray vicariously, not via eliminating the source but via iterative repair and/or replacement of the causes or “symptoms” of the source, will continue to work on any new molecular causes of damage without any new upgrades or innovations to their underlying technological and methodological infrastructures.

These would be more appropriately deemed an indefinite-biological-longevity technology, in contrast to biological-longevity technologies. Techno-immortalist approaches are by and large exclusively of the indefinite-longevity-extension variety, and so have an advantage over certain biological approaches to increased longevity, but such advantages do not apply to biological approaches to indefinite longevity.

A final advantage of techno-immortalist approaches is the independence of external environments it provides us. It also makes death by accident far less likely both by enabling us to have more durable bodies and by providing independence from external environments, which means that certain extremes of temperature, pressure, impact-velocity, atmosphere, etc., will not immediately entail our death.

I do not want to discredit any approaches to immortality discussed in this essay, nor any I haven’t mentioned. Every striving and attempt at immortality is virtuous and righteous, and this sentiment will only become more and apparent, culminating on the day when humanity looks back, and wonders how we could have spent so very much money and effort on the Space Race to the Moon with no perceivable scientific, resource, or monetary gain (though there were some nationalistic and militaristic considerations in terms of America not being superseded on either account by Russia), yet took so long to make a concerted global effort to first demand and then implement well-funded attempts to finally defeat death—that inchoate progenitor of 100,000 unprecedented cataclysms a day. It’s true—the world ends 100,000 times a day, to be lighted upon not once more for all of eternity. Every day. What have you done to stop it?

So What?

Indeed, so what? What does this all mean? After all, I never actually built any systems, or did any physical experimentation. I did, however, do a significant amount of conceptual development and thinking on both the practical consequences (i.e., required technologies and techniques, different implementations contingent upon different premises and possibilities, etc.) and the larger social and philosophical repercussions of immortality prior to finding out about other approaches. And I planned on doing physical experimentation and building physical systems; but I thought that working on it in my youth, until such a time as to be in the position to test and implement these ideas more formally via academia or private industry, would be better for the long-term success of the endeavor.

As noted in Chapter 1, this reifies the naturality and intuitive simplicity of indefinite longevity’s ardent desirability and fervent feasibility, along a large variety of approaches ranging from biotechnology to nanotechnology to computational emulation. It also reifies the naturality and desirability of Transhumanism. I saw one of the virtues of this vision as its potential to make us freer, to increase our degree of self-determination, as giving us the ability to look and feel however we want, and the ability to be—and more importantly to become—anything we so desire. Man is marked most starkly by his urge and effort to make his own self—to formulate the best version of himself he can, and then to actualize it. We are always reaching toward our better selves—striving forward in a fit of unbound becoming toward our newest and thus truest selves; we always have been, and with any courage we always will.

Transhumanism is but the modern embodiment of our ancient striving towards increased self-determination and self-realization—of all we’ve ever been and done. It is the current best contemporary exemplification of what has always been the very best in us—the improvement of self and world. Indeed, the ‘trans’ and the ‘human’ in Transhumanism can only signify each other, for to be human is to strive to become more than human—or to become more so human, depending on which perspective you take.

So come along and long for more with me; the best is e’er yet to be!

Franco Cortese is an editor for Transhumanity.net, as well as one of its most frequent contributors.  He has also published articles and essays on Immortal Life and The Rational Argumentator. He contributed 4 essays and 7 debate responses to the digital anthology Human Destiny is to Eliminate Death: Essays, Rants and Arguments About Immortality.

Franco is an Advisor for Lifeboat Foundation (on its Futurists Board and its Life Extension Board) and contributes regularly to its blog.

Bibliography

Koene, R. (2011). What is carboncopies.org? Retrieved February 28, 2013 from http://www.carboncopies.org/

Rose, M. (October 28 2004). Biological Immortality. In B. Klein, The Scientific Conquest of Death (pp. 17-28). Immortality Institute.

Sandberg, A., & Bostrom, N. (2008). Whole Brain Emulation: A Roadmap, Technical Report #2008-3. Retrieved February 28, 2013 http://www.philosophy.ox.ac.uk/__data/assets/pdf_file/0019/3853/brain-emulation-roadmap-report.pdf

Sandberg, A., & Bostrom, Koene, R. (2011). The Society of Neural Prosthetics and Whole Brain Emulation Science. Retrieved February 28, 2013 from http://www.minduploading.org/

de Grey, ADNJ (2004). Escape Velocity: Why the Prospect of Extreme Human Life Extension Matters Now. PLoS Biol 2(6): e187. doi:10.1371/journal.pbio.0020187

Squishy Machines: Bio-Cybernetic Neuron Hybrids – Article by Franco Cortese

Squishy Machines: Bio-Cybernetic Neuron Hybrids – Article by Franco Cortese

The New Renaissance Hat
Franco Cortese
May 25, 2013
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This essay is the eighth chapter in Franco Cortese’s forthcoming e-book, I Shall Not Go Quietly Into That Good Night!: My Quest to Cure Death, published by the Center for Transhumanity. The first seven chapters were previously published on The Rational Argumentator under the following titles:
***

By 2009 I felt the major classes of physicalist-functionalist replication approaches to be largely developed, producing now only potential minor variations in approach and procedure. These developments consisted of contingency plans in the case that some aspect of neuronal operation couldn’t be replicated with alternate, non-biological physical systems and processes, based around the goal of maintaining those biological (or otherwise organic) systems and processes artificially and of integrating them with the processes that could be reproduced artificially.

2009 also saw further developments in the computational approach, where I conceptualized a new sub-division in the larger class of the informational-functionalist (i.e., computational, which encompasses both simulation and emulation) replication approach, which is detailed in the next chapter.

Developments in the Physicalist Approach

During this time I explored mainly varieties of the cybernetic-physical functionalist approach. This involved the use of replicatory units that preserve certain biological aspects of the neuron while replacing certain others with functionalist replacements, and other NRUs that preserved alternate biological aspects of the neuron while replacing different aspects with functional replacements. The reasoning behind this approach was twofold. The first was that there was a chance, no matter how small, that we might fail to sufficiently replicate some relevant aspect(s) of the neuron either computationally or physically by failing to understand the underlying principles of that particular sub-process/aspect. The second was to have an approach that would work in the event that there was some material aspect that couldn’t be sufficiently replicated via non-biological physically embodied systems (i.e., the normative physical-functionalist approach).

However, these varieties were conceived of in case we couldn’t replicate certain components successfully (i.e., without functional divergence). The chances of preserving subjective-continuity in such circumstances are increased by the number of varieties we have for this class of model (i.e., different arrangements of mechanical replacement components and biological components), because we don’t know which we would fail to functionally replicate.

This class of physical-functionalist model can be usefully considered as electromechanical-biological hybrids, wherein the receptors (i.e., transporter proteins) on the post-synaptic membrane are integrated with the artificial membrane and in coexistence with artificial ion-channels, or wherein the biological membrane is retained while the receptor and ion-channels are replaced with functional equivalents instead. The biological components would be extracted from the existing biological neurons and reintegrated with the artificial membrane. Otherwise they would have to be synthesized via electromechanical systems, such as, but not limited to, the use of chemical stores of amino-acids released in specific sequences to facilitate in vivo protein folding and synthesis, which would then be transported to and integrated with the artificial membrane. This is better than providing stores of pre-synthesized proteins, due to more complexities in storing synthesized proteins without decay or functional degradation over storage-time, and in restoring them from their “stored”, inactive state to a functionally-active state when they were ready for use.

During this time I also explored the possibility of using the neuron’s existing protein-synthesis systems to facilitate the construction and gradual integration of the artificial sections with the existing lipid bilayer membrane. Work in synthetic biology allows us to use viral gene vectors to replace a given cell’s constituent genome—and consequently allowing us to make it manufacture various non-organic substances in replacement of the substances created via its normative protein-synthesis. We could use such techniques to replace the existing protein-synthesis instructions with ones that manufacture and integrate the molecular materials constituting the artificial membrane sections and artificial ion-channels and ion-pumps. Indeed, it may even be a functional necessity to gradually replace a given neuron’s protein-synthesis machinery with protein-synthesis-based machinery for the replacement, integration and maintenance of the non-biological sections’ material, because otherwise those parts of the neuron would still be trying to rebuild each section of lipid bilayer membrane we iteratively remove and replace. This could be problematic, and so for successful gradual replacement of single neurons, a means of gradually switching off and/or replacing portions of the cell’s protein-synthesis systems may be required.

Franco Cortese is an editor for Transhumanity.net, as well as one of its most frequent contributors.  He has also published articles and essays on Immortal Life and The Rational Argumentator. He contributed 4 essays and 7 debate responses to the digital anthology Human Destiny is to Eliminate Death: Essays, Rants and Arguments About Immortality.

Franco is an Advisor for Lifeboat Foundation (on its Futurists Board and its Life Extension Board) and contributes regularly to its blog.

How Can I Live Forever?: What Does and Does Not Preserve the Self – Video by G. Stolyarov II

How Can I Live Forever?: What Does and Does Not Preserve the Self – Video by G. Stolyarov II

When we seek indefinite life, what is it that we are fundamentally seeking to preserve? Mr. Stolyarov discusses what is necessary for the preservation of “I-ness” – an individual’s direct vantage point: the thoughts and sensations of a person as that person experiences them directly.

Once you are finished with this video, you can take a quiz and earn the “I-ness” Awareness Open Badge.

Reference

– “How Can I Live Forever?: What Does and Does Not Preserve the Self” – Essay by G. Stolyarov II

The Moral Imperative and Technical Feasibility of Defeating Death – Article by Franco Cortese

The Moral Imperative and Technical Feasibility of Defeating Death – Article by Franco Cortese

The New Renaissance Hat
Franco Cortese
May 5, 2013
******************************

Consume my heart away; sick with desire
And fastened to a dying animal
It knows not what it is; and gather me
Into the artifice of eternity.
Once out of nature I shall never take
My bodily form from any natural thing,
But such a form as Grecian goldsmiths make
Of hammered gold and gold enameling
To keep a drowsy Emperor awake;
Or set upon a golden bough to sing
To lords and ladies of Byzantium
Of what is past, or passing, or to come.

~ W. B. Yeats

The original is unfaithful to the translation.

~ Jorge Luis Borges

“Whatever can be repaired gradually without destroying the original whole is, like the vestal fire, potentially eternal.

~ Francis Bacon, A History of Life and Death, 1638

I became both Immortalist and Transhumanist long before I knew such designations existed. In 2006, at age 14, I conceived of both the extreme desirability and technical feasibility of ending death, without any knowledge of the proposals for immortality already extant. I thought I was the only one in the world who saw both the utter, belligerent waste of death, and our ability to technologically defeat it. I was dumbfounded that humanity wasn’t attacking the problem like any other preventable source of widespread suffering. I saw that the end of death was not only desirable but a moral imperative.
***

If we have the power to make it happen, or have even a chance at doing so, yet fail to even try for reasons of inertia, incredulity, or indifference, then we are condemning massive amounts of real people to unnecessary death by our inaction. I felt a moral obligation to work on conceptual development of the various pragmatic aspects required  to physically realize indefinite longevity until I was old enough to physically put these developments into practice – i.e., do experiments and design physical systems. I worked on my grand project, as I thought of it, from August 2006 until May 2010, at which time I discovered multiple other approaches to indefinite longevity being actively developed (initially through Kurzweil’s The Singularity is Near), and even multiple antecedents of my own approach, I felt less of an imperative to continue active conceptual development on these procedures. I was happy to find the existing Immortalist movement, of course; I stopped not out of resentment for having been anteceded, but rather out of newfound assurance that the defeat of death didn’t lay solely in my hands.

I had worked for 4 years on conceptual designs and approaches to indefinite life extension – designs that I was planning on building and experimentally verifying in my young adulthood, whether through normative medical research and academia or through a privately funded venture, thinking that I would have more of a success than if I came to the world as a teenager with these ideas, as they were. By 2010, 4 years into the project, I discovered that others were seeking the defeat of death through technological intervention as well, and that many of the specific ideas I had come up with were already out and in the world.

My original approach involved transplanting the organic brain into a full cybernetic body. Over the next few months I collected research on experiments in organic brain transplantation done with salamanders, dogs, and monkeys , on maintaining the brain’s homeostatic and regulatory mechanisms outside the body and on a host of prosthetic and robotic technologies which I saw as developmentally converging to allow the creation of a fully cybernetic body. I soon realized that this approach was problematic; while the brain typically dies as a consequence of its homeostatic and regulatory mechanisms (i.e. heart and lungs failing), it would still fall prey to cell death if it remained organic, even if such regulatory mechanisms were maintained technologically.

This obstacle led to my conceiving the essential gestalt of uploading – the gradual replacement of neurons with functional equivalents that preserve each original neuron’s relative location and connection – three months later. Although my original approach was prosthetic (i.e., physically embodied functional equivalents of neurons), I eventually saw computational models as being preferable for their comparatively higher speed and ease of modification and/or modulation.

I discovered that Brain-Emulation and Connectomics (or Mind-Uploading more informally) was an existing discipline not long after conceiving of the idea, but at the time thought that various aspects required for gradual replacement (and thus for real immortality, and not the creation of an immortal double, were undeveloped in regard to how the computational models would communicate and maintain functional equilibrium with the existing biological neurons. If we seek to replace biological neurons with artificial equivalents, once we have a simulation of a given neuron in a computer outside the body, how is that simulated neuron to communicate with the biological neurons still inside that biological body, and vice versa? My solution was the use of initially MEMS (micro-electro-mechanical systems) but later NEMS (nano-electro-mechanical-systems) to detect biophysical properties via sensors and translate them into computational inputs, and likewise to translate computational output into biophysical properties via electrical actuators and the programmed release of chemical stores (essentially stored quantities of indexed chemicals to be released upon command). While the computational hardware could hypothetically be located outside the body, communicating wirelessly to corresponding in-vivo sensors and actuators, I saw the replacement of neurons with enclosed in-vivo computational hardware in direct operative connection with its corresponding sensors and actuators as preferable. I didn’t realize until 2010 that this approach—the use of NEMS to computationally model the neurons, to integrate (i.e., construct and place) the artificial neurons and translate to biophysical signals into computational signals and vice versa—was already suggested by Kurzweil and conceptually developed more formally by Robert Freitas, and when I did, I felt that I didn’t really have much to present that hadn’t already been conceived and developed.

However, since then I’ve come to realize some significant distinctions between my approach and Brain-Emulation, and that besides being an interesting story that helps validate the naturality of Immortalism’s premises (that indefinite longevity is a physically realizable state, and thus technologically realizable –  and what can be considered the “strong Immortalist” claim: that providing people the choice of indefinite longevity if it were realizable is a moral imperative), I had several novel notions and conceptions which might prove useful to the larger community working and thinking on these topics.

While this project began as a means of indefinite longevity, it took on Transhumanist concerns within days of its conception. A cybernetic body not only frees one from the strictures of death, but also from the limitations of a static body designed for a static environment. Freed from our flesh, we could comfortably bear any extremes of Earth or beyond; interchange our bodily designs with the nonchalance of attire; and continuously, on a daily basis, take charge of what it means for us to be. I envisioned extreme phenotypic diversity as undermining racism and prejudices, an explosion of intelligence and happiness consequent of finally taking the stuff of our being into our own hands, the newfound availability of heretofore unrealized modalities of being, experience, thought, morality, and abilities realized through the technological extension and enhancement of the mind.

By 2007, I was calling this philosophy “Enhancism”, which I designated as the thesis that enhancement is the principal underlying both human nature and evolutionary nature. Regardless of what constitutes an “enhancement”, the fact that we strive to reach idealized objectives and grow toward what we envision as better versions of our selves and our world exemplifies enhancement as the underlying driver and primal force that makes up Mind, Man, and Humanity. The objective or “optimization target” isn’t important – what is important is the act of designating an objective as better, and then striving in a fit of fiery thrusts toward it.

I never saw this imperative of improving ourselves using all available means as a move away from humanity, but rather as a natural extension and continuation of what has always best designated us as human. I realized that self-directed modification of both body and mind were not only both possible and desirable, but a natural extension of what humanity has been doing since long before the very concept of “humanity” existed. I had arrived at the essential premises and conclusions of both Immortalism and Transhumanism without exposure to existing forms of either. Indeed, this was even before I started reading science fiction!

I think this observation undermines what I feel to be a common misconception of outside of Transhumanist circles – that Transhumanism and Immortalism are fringe movements for statistical outliers with idiosyncratic interests. I think that this rather adds credence to rebuttal that Transhumanism and Immortalism exemplify the modern embodiment of all we’ve ever been; that they are not founded upon grandiose and overly contingent axioms, but rather on the respective premises that life is good and so should be extended for as long as possible and that we are more likely to create a better world and better selves than we are to find them already given.

If the underlying logic behind Immortalism and Transhumanism can be independently arrived at by a 14-year-old without any knowledge of historical or extant forms of either, then how removed from the human concerns of the majority can they really be? If they relied on a host of contingent hopes and deviant memetic baggage – if their claims or conclusions were overly complicated in any way – how could they be arrived at so readily and fluidly by an adolescent?

I also unwittingly recapitulated many specific Transhumanist objectives throughout the course of my “grand project”, as I had thought of it at the time. My approach of gradually replacing the neurons in the brain with functional equivalents would necessitate control over the processes exhibited by the replacements. This would allow us to actively and consciously control the variables and metrics determining neuronal behavior, not only modifying ourselves through the integration of additional NRUs (neuron-replication-units) or NRU-networks, but also through active modification and real-time modulation of the NRUs that would by then underlie our existing mental and experiential modalities, having replaced our existing biological neurons.

Within the first year of the project, I had conceived of using these new capabilities to make ourselves smarter (an unwitting recapitulation of intelligence-amplification), of making ourselves more ethical (an unwitting recapitulation of moral engineering, explored by such thinkers as James Hughes, Julian Savulescu and Asher Seidel, among others), and of actively making ourselves happier, or rather of eliminating those normative biological aspects that bias us needlessly towards unhappiness (an unwitting variant of David Pearce’s hedonistic imperative), and the exchange of real-time perception and memory deeper and of higher fidelity than sensory memories, essentially extending to thoughts, emotions, and indeed all experiential modalities available to us.

One could imagine my surprise upon finding Transhumanism and Immortalism as existing disciplines and movements; I felt as though I had borne a son and gone away for a day only to return and find him grown up – and that I was never his biological father to begin with.

The fact that both Transhumanist (i.e., enhancement, self-modification and self-modulation) and Immortalist concerns and conceptions developed concurrently throughout my work also reifies their having a shared gestalt. While they are not mutually inclusive (you can be one without being the other), they do share some strong similarities. They both eschew biological and naturalistic limitations, exalt autonomy and the provision of rights, and spring from a legitimate glorification of life and self.

The last point I would like to make here is one that I think helps subvert the superficial claim that Transhumanist or Immortalist objectives are essentially selfish concerns. At 14 I had no personal stake in trying to end death as fast as possible; both ending death and increasing our ability to better determine who we are and what we can do were from day one for the world and for broader humanity – particularly for those who didn’t have the majority of the rest of their lives to live: the 100,000 people who succumb to bitter finitude each day. I think most other Transhumanist and Immortalist thinkers would agree that any positive future involves broad access to both longevity treatments and to the latest means of improving and realizing ourselves.

None of these naïve misinterpretations are real concerns to Transhumanist and Immortalist communities, except in regards to the degree with which they prevent people from digging deep enough to discover their stark insubstantiality. While they may be so off-base as to make their fallaciousness readily obvious to members of either community, and thus a seeming non-issue, I think the way in which they engender public misconceptions about Transhumanism and Immortalism validates our need to dispel them. Transhumanism is the only humanism; it exemplifies the very heart of what makes us human. The “trans” and the “human” in Transhumanism can only signify each other, for to be human is to strive to become more than human. I’ve thought this from the beginning, and this is a direction that my thinking – while having developed significantly since the practical work described here – is still oriented toward.

I wonder how many others there are out there like me, yet to approach the world with their vast extrapersonal visions of self-directed self-realization, yet to find the daring to throw their raucous good works in the face of this world that deserves better than to simply die quietly and unquestioningly, without revolt; others who, like me, saw that to try and change the world for the better is the very namesake of Man; who’ve crafted star-spangled dreams as large and as belligerently righteous as ending death and taking definite control of our ever-indefinite and indefinitive selves.

To every riled child who has ever had a vision larger than himself but that he has been too afraid to reveal, who has ever dreamt of bounding past the boundaries of present and toward the real prize, who has ever felt a dire need to make Man more than he is: I call thee out of the whorlworks and into the world! Come, show us what you’ve done!

What follows in my subsequent essays is first a broad overview of my work in this area from 2006 to 2010 (at which time I had discovered enough Immortalist antecedents to stop actively working on conceptual varieties of techno-immortality), first in terms of my methodology for achieving indefinite longevity (i.e., my work in uploading or brain-emulation proper), and then in terms of the enhancement and modification side, focusing on similarities and differences between my vision and those developed in Transhumanism and Immortalism.

While this essay is largely personal and introductory, I think the fact of my independently arriving at many of the conceptual premises and conclusions of Transhumanism and Immortalism, and under different terms, also reifies the more substantial claim that Transhumanism isn’t as far-out as is normatively presumed—or perhaps rather that the “human” isn’t as right-here as is commonly supposed. For that curious creature of clamorous self-determination called Man is most familiar with unfamiliarity, and most at home in alien dendritic jungles, for having gone so far out as to come back around again.

While in 2010 I thought most of my ideas in regards to practical approaches to immortality as already conceived, I now see some differences between my approach and other conceptions of brain-emulation. One is the conceptual development of physical/prosthetic approaches to neuron replication and replacement (i.e., prosthetics on the cellular scale) in addition to strictly computational approaches. Another is several novel approaches to preserving both immediate subjective-continuity (that is, the ability to have subjective experience, sometimes called sentience – as opposed to sapience, which denotes our higher cognitive capacities like abstract thinking, thus humans have sentience and sapience while most non-mammals are thought to lack sapience but possess sentience) and temporal subjective-continuity (the property of feeling like the same subjective person as you did yesterday, or a week ago, or 10 years ago – despite the fact that all of the molecules constituting your brain are gone, having been replaced with identical molecules through metabolism – via molecular turnover rather than full-cell replacement – over the course of a seven-year period) through a gradual (neuron) replacement procedure that are to my knowledge yet to be explored by the wider techno-immortalist community and brain-emulation discipline, respectively.

Franco Cortese is an editor for Transhumanity.net, as well as one of its most frequent contributors.  He has also published articles and essays on Immortal Life and The Rational Argumentator. He contributed 4 essays and 7 debate responses to the digital anthology Human Destiny is to Eliminate Death: Essays, Rants and Arguments About Immortality.

Franco is an Advisor for Lifeboat Foundation (on its Futurists Board and its Life Extension Board) and contributes regularly to its blog.

Bibliography

(June 2012). International Journal of Machine Consciousness, 4 (1).

Browne, M. W. (2011). From science fiction to science: ‘the whole body transplant’. Retrieved February 28, 2013 from http://www.nytimes.com/1998/05/05/science/essay-from-science-fiction-to-science-the-whole-body-transplant.html

Demikhov, V. P. & (1962).Experimental transplantation of vital organs. Basil Haigh, transl. New York: Consultant’s Bureau Enterprises, Inc.

Grabianowski (2007). How Brain-computer Interfaces Work. Retrieved February 28, 2013 from http://computer.howstuffworks.com/brain-computer-interface.htm

Hickey, L. P. (2011). The brain in a vat argument. Internet encyclopedia of philosophy, 2011. Retrieved February 28, 2013 from http://www.iep.utm.edu/brainvat/

Kurzweil, R. (2005). The Singularity is Near. Penguin Books, p. 63-67.

Martins, N. R., Erlhagen, W. & Freitas Jr., R. A. (2012). Non-destructive whole-brain monitoring using nanorobots: Neural electrical data rate requirements. International Journal of Machine Consciousness, 2011 .Retrieved February 28, 2013 from http://www.nanomedicine.com/Papers/NanoroboticBrainMonitoring2012.pdf (URL).

Narayan, A. (2004). Computational Methods for NEMS.Retrieved February 28, 2013 from http://nanohub.org/resources/407.

Pietsch, P. & Schneider, C. W. (1969). Brain transplantation in salamanders: an approach to memory transfer . Brain Research, Aug;14 (3), 705-715. PMID: 5822440

Stoney, W. S. (1962). Evolution of cardiopulmonary bypass. Experimental transplantation of vital organs. Circulation, 2009 (119), 2844-53.

Vagaš, M. (2012). To view the current state of robotic technologies. Advanced Materials Research. Circulation, 2012 , 436-464, 1711.

What is MEMS Technology? (2011). Retrieved February 28, 2013 from https://www.memsnet.org/about/what-is.html

Morality Needs Immortality to Live – Article by Franco Cortese

Morality Needs Immortality to Live – Article by Franco Cortese

“In Order to be Go(o)d, We Can’t Die!” Says Kant

The New Renaissance Hat
Franco Cortese
May 2, 2013
******************************

Dead Immortalist Sequence –  #1: Immanuel Kant (1724-1804)

Kant is often misconstrued as advocating radical conformity amongst people, a common misconception drawn from his Categorical Imperative, which states that each should act as though the rules underlying his actions can be made a universal moral maxim. The extent of this universality, however, stops at the notion that each man should act as though the aspiration towards morality were a universal maxim. All Kant meant, I argue, was that each man should act as though the aspiration toward greater morality were able to be willed as a universal moral maxim.

This common misconception serves to illustrate another common and illegitimate portrayal of the Enlightenment tradition. Too often is the Enlightenment libeled for its failure to realize the ideal society. Too often is it characterized most essentially by its glorification of strict rationality, which engenders invalid connotations of stagnant, statuesque perfection – a connotation perhaps aided by the Enlightenment’s valorization of the scientific method, and its connotations of stringent and unvarying procedure and methodology in turn. This takes the prized heart of the Enlightenment tradition and flips it on its capsized ass. This conception of the Enlightenment tradition is not only wrong, but antithetical to the true organizing gestalt and prime impetus underlying the Age of the Enlightenment.

The Enlightenment wasn’t about realizing the perfect society but rather about idealizing the perfect society – the striving towards an ever-inactualized ideal which, once realized, would cease to be ideal for that very reason. The Enlightenment was about unending progress towards that ideal state – for both Man as society and man as singular splinter – of an infinite forward march towards perfection, which, upon definitively reaching perfection, will have failed to achieve its first-sought prize. The virtue of the Enlightenment lies in the virtual, and its perfection in the infinite perfectibility inherent in imperfection.

This truer, though admittedly less normative, interpretation of the Enlightenment tradition, taking into account its underlying motivations and projected utilities – rather than simply taking flittered glints from the fallacious surface and holding them up for solid, tangible truth – also serves to show the parallels between the Enlightenment gestalt and Transhumanism. James Hughes, for one, characterizes Transhumanism as a child of the Enlightenment Tradition [1].

One can see with intuitive lucidity that characterizing the Enlightenment’s valorization of rationality goes against the very underlying driver of that valorization. Rationality was exalted during the Age of Enlightenment for its potential to aid in skepticism toward tradition. Leave the chiseled and unmoving, petty perfection of the statue for the religious traditions the Enlightenment was rebelling against – the inviolable God with preordained plan, perfect for his completion and wielding total authority over the static substance of Man; give the Enlightenment rather the starmolten fire-afury and undulate aspiration toward ever-forth-becoming highers that it sprang from in the first place. The very aspects which cause us to characterize the enlightenment as limiting, rigid, and unmolten are those very ideals that, if never realized definitively – if instead made to form an ongoing indefinite infinity – would thereby characterize the Enlightenment tradition as a righteous roiling rebellion against limitation and rigour – as a flighty dive into the molten maelstrom of continuing mentation toward better and truer versions of ourselves and society that was its real underlying impetus from the beginning.

This truer gestalt of the Enlightenment impinges fittingly upon the present study. Kant is often considered one of the fathers of the Enlightenment. In a short essay entitled “What is the Enlightenment?” [2], Kant characterizes the essential archetype of Man (as seen through the lens of the Enlightenment) in a way wholly in opposition to the illegitimate conceptions of the Enlightenment described above – and in vehement agreement with the less-normative interpretation of the Enlightenment that followed. It is often assumed, much in line with such misconceptions, that the archetype of Man during the Age of the Enlightenment was characterized by rational rigour and scientific stringency. However, this archetype of the mindless, mechanical automaton was the antithesis of Man’s then-contemporary archetype; the automaton was considered rather the archetype of animality – which can be seen as antithetical to the Enlightenment’s take on Man’s essence, with its heady rationality and lofty grasping towards higher ideals. In his essay, Kant characterizes the Enlightenment’s archetype of Man as the rebellious schoolboy who cannot and shall not be disciplined into sordid subservience by his schoolmasters. Here Kant concurs gravely from beyond the grave that Man’s sole central and incessant essence is his ongoing self-dissent, his eschewing of perverse obligation, his disleashing the weathered tethers of limitation, and his ongoing battle with himself for his own self-creation.

It is this very notion of infinite progress towards endlessly perfectable states of projected perfection that, too, underlies his ties to Immortalism. Indeed, his claim that to retain morality we must have comprehensively unending lives – that is, we must never ever die – rests crucially on this premise.

In his Theory of Ethics [3] under “Part III: The Summum Bonum, God and Immortality” [4], Kant argues that his theory of ethics necessitates the immortality of the soul in order to remain valid according to the axioms it adheres to. This is nothing less than a legitimation of the desirability of personal immortality from a 1700’s-era philosophical rockstar. It is important to note that the aspects making it so crucial in concern to Kant’s ethical system have to do with immortality in general, and indeed would have been satisfied according to non-metaphysical (i.e. physical and technological) means – having more to do with the end of continued life and indefinite longevity or Superlongevity in particular, than with the particular means used to get there, which in his case is a metaphysical means. Karl Ameriks writes in reference to Kant here: “… the question of immortality is to be understood as being about a continued temporal existence of the mind. The question is not whether we belong to the realm beyond time but whether we will persist through all time…Kant also requires this state to involve personal identity.” [5]. While Kant did make some metaphysical claims tied to immortality – namely the association of degradation and deterioration with physicality, which when combined with the association of time with physicality may have led to his characterization of the noumenal realm (being the antithesis of the phenomenal realm) as timeless and free from causal determination – these claims are beyond the purview of this essay, and will only be touched upon briefly. What is important to take away is that the metaphysical and non-metaphysical justifications are equally suitable vehicles for Kant’s destination.

Note that any italics appearing within direct quotations are not my own and are recorded as they appeared in the original. All italics external to direct quotations are my own. In  the 4th Section, The immortality of the soul as a postulate of pure practical reason, of the 3rd Part of Theory of Ethics, Kant writes: “Pure  practical reason postulates the immortality of the soul, for reason in the pure and practical sense aims at the perfect good (Summum Bonum), and this perfect good is only possible on the supposition of the soul’s immortality.” [5]

Kant is claiming here that reason (in both senses with which they are taken into account in his system – that is, as pure reason and practical reason) is aimed at perfection, which he defines as continual progress towards the perfect good – rather than the attainment of any such state of perfection, and that as finite beings we can only achieve such perfect good through an unending striving towards it.

In a later section, “The Antinomy of Practical Reason (and its Critical Solution)” [6], he describes the Summum Bonum as “the supreme end of a will morally determined”. In an earlier section, The Concept of the Summum Bonum [7], Kant distinguishes between two possible meanings for Summum; it can mean supreme in the sense of absolute (not contingent on anything outside itself), and perfect (not being part to a larger whole). I take him to claim that it means both.

He also claims personal immortality is a necessary condition for the possibility of the perfect good. In the same section he describes the Summum Bonum as the combination of two distinct features: happiness and virtue (defining virtue as worthiness of being happy, and in this section synonymizing it with morality). Both happiness and virtue are analytic and thus derivable from empirical observation.

However, their combination in the Summum Bonum does not follow from either on its own and so must be synthetic, or reliant upon a priori cognitive principles, Kant reasons. I interpret this as Kant’s claiming that the possibility of the Summum Bonum requires God and the Immortality of the Soul because this is where Kant grounds his a priori, synthetic, noumenal world – i.e. the domain where those a priori principles exist (in/as the mind of God, for Kant).

Kant continues:

“It is the moral law which determines the will, and in this will the perfect harmony of the mind with the moral law is the supreme condition of the summum bonum… the perfect accordance of the will with the moral law is holiness, a perfection of which no rational being of the sensible world is capable at any moment of his existence. Since, nevertheless, it is required as practically necessary, it can only be found in a progress in infinitum towards that perfect accordance, and on the principles of pure practical reason is nonetheless necessary to assume such a practical progress as the real object of our will.” [8]

Thus not only does Kant argue for the necessitated personal immortality of the soul by virtue of the fact that perfection is unattainable while constrained by time, he argues along an alternate line of reasoning that such perfection is nonetheless necessary for our morality, happiness and virtue, and that we must thus therefore progress infinitely toward it without ever definitively reaching it if the Summum Bonum is to remain valid according to its own defining attributes and categorical-qualifiers as-such.

Kant decants:

“Now, this endless progress is only possible on the supposition of an endless duration of existence and personality of the same rational being (which is called the immorality of the soul). The Summum Bonum, then, practically is only possible on the supposition of the immortality of the soul; consequently this immortality, being inseparably connected with the moral law, is a postulate of pure practical reason (by which I mean a theoretical proposition, not demonstrable as such, but which is an inseparable result of an unconditional a priori practical law). This principle of the moral destination of our nature, namely, that it is only in an endless progress that we can attain perfect accordance with the moral law… For a rational but finite being, the only thing possible is an endless progress from the lower to higher degrees of moral perfection. In Infinite Being, to whom the condition of time is nothing… is to be found in a single intellectual intuition of the whole existence of rational beings. All that can be expected of the creature in respect of the hope of this participation would be the consciousness of his tried character, by which, from the progress he has hitherto made from the worse to the morally better, and the immutability of purpose which has thus become known to him, he may hope for a further unbroken continuance of the same, however long his existence may last, even beyond this life, and thus may hope, not indeed here, nor in any imaginable point of his future existence, but only in the endlessness of his duration (which God alone can survey) to be perfectly adequate to his will.” [9]

So, Kant first argues that the existence of the Summum Bonum requires the immorality of the soul both a.) because finite beings conditioned by time by definition cannot achieve the absolute perfection of the Summum Bonum, and can only embody it through perpetual progress towards it, and b.) because the components of the Summum Bonum (both of which must be co-present for it to qualify as such) are unitable only synthetically through a priori cognitive principals, which he has argued elsewhere must exist in a domain unconditioned by time (which is synonymous with his conception of the noumenal realm) and which must thus be perpetual for such an extraphysical realm to be considered unconditioned by time and thus noumenal. The first would correspond to Kant’s strict immortalist underpinnings, and the second to the alternate (though not necessarily contradictory) metaphysical justification alluded to earlier.

Once arguing that the possibility of the Summum Bonum requires personal immortality, he argues that our freedom/autonomy, which he locates as the will (and further locates the will as being determined by the moral law) also necessitates the Summum Bonum. This would correspond to his more embryonically Transhumanist inclinations. In the first section (“The Concept of Summum Bonum”) he writes, “It is a priori (morally) necessary to produce the summum bonum by freedom of will…” I interpret this statement in the following manner. He sees morality as a priori and synthetic, and the determining principle which allows us to cause in the world without being caused by it – i.e., for Kant our freedom (i.e., the quality of not being externally determined) requires the noumenal realm because otherwise we are trapped in the freedom-determinism paradox. Thus the Summum Bonum also vicariously necessitates the existence of God, because this is necessary for the existence of a noumenal realm unaffected by physical causation (note that Kant calls physicality ‘the sensible world’). Such a God could be (and indeed has been described by Kant in terms which would favor this interpretation) synonymous with the entire noumenal realm, with every mind forming but an atom as it were in the larger metaorganismal mind of a sort of meta-pantheistic, quasi-Spinozian conception of God – in other words, one quite dissimilar to the anthropomorphic connotations usually invoked by the word.

Others have drawn similar conclusions and made similar interpretations. Karl Ameriks summarizes Kant’s reasoning here thusly:

“All other discussions of immortality in the critical period are dominated by the moral argument that Kant sets out in the second critique. The argument is that morality obligates us to seek holiness (perfect virtue), which therefore must be possible, and can only be so if God grants us an endless afterlife in which we can continually progress… As a finite creature man is incapable of ever achieving holiness, but on – and only in – an endless time could we supposedly approximate to it (in the eyes of God) as fully as could be expected… Kant is saying not that real holiness is ever a human objective, but rather that complete striving for it can be, and this could constitute for man a state of ‘perfect virtue’…” [10]

The emphasis on indefinity is also present in the secondary literature; Ameriks remarks that Kant ”…makes clear that the ‘continual progress’ he speaks of can ultimately have a ‘non-temporal’ nature in that it is neither momentary nor of definitive duration nor actually endless”. Only through never quite reaching our perfected state can we retain the perfection of lawless flawedness.

Paul Guyer corroborates my claim that the determining factor is not the claim that mind is an extramaterial entity or substance, but because if morality requires infinite good and if we are finite beings, then we must be finite beings along an infinite stretch of time in order to satisfy the categorical requirements of possessing such an infinity. He writes that ”..the possibility of the perfection of our virtuous disposition requires our actual immortality…” [11] and that ”…God and immortality are conditions specifically of the possibility of the ultimate object of virtue, the highest good – immortality is the condition for the perfection of virtue and God that for the realization of happiness…[12]

In summary, it doesn’t matter that Kant’s platform was metaphysical rather than technological, because the salient point and determining factors were not the specific operation or underlying principles (or the “means”) used to achieve immortality, but rather the very ends themselves. Being able to both live and progress in(de)finitely was the loophole that provided, for Kant, both our freedom and our morality. Kant said we can’t die if we want to be moral, that we can’t die if we want to gain virtue, and that we can’t die if we want to remain free.

Franco Cortese is an editor for Transhumanity.net, as well as one of its most frequent contributors.  He has also published articles and essays on Immortal Life and The Rational Argumentator. He contributed 4 essays and 7 debate responses to the digital anthology Human Destiny is to Eliminate Death: Essays, Rants and Arguments About Immortality.

Franco is an Advisor for Lifeboat Foundation (on their Futurists Board and their Life Extension Board) and contributes regularly to their blog.

References:

[1] Hughes, J. J. (2001). The Future of Death: Cryonics and the Telos of Liberal Individualism. Journal of Evolution &  Technology, 6 .

[2] Kant, I. (1996). In M.J. Gregor Practical Philosophy, Cambridge University Press.

[3] Kant, I. (1957). In T. M. Greene Kant selections, New York: Charles Scribner’s Sons.

[4] Ibid,. p. 350.

[5] Ameriks, K. (2000). Kant’s  Theory of Mind: An Analysis of the Paralogisms of Pure Reason: Oxford University Press.

[6] Ibid., p. 352.

[7] Ibid., p. 350.

[8] Ibid,. p. 358.

[9] Ibid,. p. 359.

[10] Ameriks, K. (2000). Kant’s Theory of Mind: An Analysis of the Paralogisms of Pure Reason: Oxford University Press.

[11] Freydberg, B. (2005). Imagination of  Kant’s critique of practical reason: Indiana University Press.

[12] Guyer, P. (2000). Kant on Freedom, Law,  and Happiness: Cambridge University Press.

This TRA feature has been edited in accordance with TRA’s Statement of Policy.

Life Extension and the Significance of Death – Article by Gyreck

Life Extension and the Significance of Death – Article by Gyreck

The New Renaissance Hat
Gyreck
May 1, 2013
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Some people say that death is what gives life significance, but then people often parrot nonsense they haven’t given any real thought to.

150,000 people die on Earth every day, on average, and people rarely give it much or any thought. That doesn’t sound much like significance or meaning to me, in terms of either life or death. Even just the magnitude of the statement, that 150,000 people die every day, is just lost on people.

Every few days or so, the same number of people die as had died in the entire American Civil War.

Every single year, about the same number of people die as had died in the whole of World War II.

If that sounds too big to grasp (which, of course, it is), just imagine, if you can, a group of just over a hundred people, about the number of people in four full classrooms.  Imagine that group of people crowding into a room with you and then dying right in front of you, from a whole range of causes and within the span of just a single minute. Then, a whole new group of over a hundred comes in, of all ages and backgrounds, and then they, too, all die right in front of you, many in pain and terror, many of them dying horrifically, over the span of the next single minute…. and then over another hundred come in again and start dying over the next minute, and again, and again, over and over, minute after minute…. 1,440 times in a row. Then, you will have the number of people who die over a span of just a single day – the same as 50 World Trade Center attacks. Every day.

The magnitude of it, along with the absolute helplessness of doing anything about it and the knowledge of the absolute certainty that you will be part of one of those groups to die, is just staggering. No small wonder that culture has largely stupefied people to the idea, and has scared and deluded them into all manner of denial over it. This has been such a severe form of trauma to the public’s consciousness that the majority of people actually cling cultishly to the absurd idea that this process is actually a good thing. It’s amazing and shameful to consider how detached someone would have to be from the sheer horror of this thing in order to suggest that it is in any way “good”. Even now, in typing this, I can just hear the voices of protest out there with their excuses and rationalizations about why all this misery and suffering “needs” to happen. We’re all lined up in the concentration camps, and the people in line around you are talking about how it’s a “good” thing and how we “need” to be put into the ovens.

It seems like most of humanity’s problems stem from acquiring absurd beliefs, and then clinging to them with a deaf ear to anything of the contrary. I think that’s really one of the greatest and most disastrous problems the human race needs to overcome.

On the life and death thing…

Putting everything else aside, I think people don’t give life enough value partly because they know they’ll die no matter what they do.

We’re basically all rental cars, and no matter how well we take care of ourselves, we’re going to be taken back in the end, while at the same time no matter how reckless we are with ourselves, we’ll never have to pay for it after the fact. In that situation it’s kind of hard to avoid some form of the attitude “Well f*** it, we’re just going to die anyway”. The effect of this way of thinking is not to give life value. In fact, this does the exact opposite. In principle we like to think this should make us treasure our every moment, given how few and fleeting these moments are, but unless we’re really concentrating and making a point to focus on that idea, that’s not what we really do. For example, we don’t put a lot of value in perishable goods, in rotting houses, or in failing businesses. We do tend to value and invest ourselves in things that have longevity, strength, stability and durability.

Here’s the reality of the situation…

We’re not going to consider death significant until it’s a rare occurrence.

Imagine going for a hundred years without anyone you know dying. How much bigger of a deal is it all of a sudden when somebody does die? Think about how any event involving younger people dying today is always talked about as being a bigger deal than when older people die, how people seem to always bring up how much life the younger ones had left to live.  It’s the amount of life left unlived that ends up getting the focus.  The fact of someone dying at age sixty isn’t seen as being as bad as someone dying at age fifteen.  Now imagine if people were living for over seven hundred years, and then someone dies at only age sixty. How much bigger of a deal has that suddenly become? At the same time, imagine a seven-hundred-year-old dying. How much life, history, and experience has just been lost to the world? Doesn’t that suddenly seem more significant?

In reality, a short expiration date doesn’t make anything more valuable; it just makes it more disposable. The inevitable and very near-future extension of our lifespans is not going to make life less valuable, and death is absolutely not what gives our lives meaning. This is a delusion that most of us are trapped in, and we really need to grow up and do a better job of getting over it.

Gyreck is an artist, philosopher, poet, roboticist, humanist, and rational materialist. You can view some of his art here.

This TRA feature has been edited in accordance with TRA’s Statement of Policy.

Life Extension and Risk Aversion – Video by G. Stolyarov II

Life Extension and Risk Aversion – Video by G. Stolyarov II

Mr. Stolyarov explains that living longer renders people more hesitant to risk their lives, for the simple reason that they have many more years to lose than their less technologically endowed ancestors.

References
– “Life Extension and Risk Aversion” – Essay by G. Stolyarov II
– “Life expectancy variation over time” – Wikipedia
Life Expectancy Graphs – University of Oregon
History of Life Expectancy – WorldLifeExpectancy.com
– “Steven Pinker” – Wikipedia
– “The Better Angels of Our Nature” – Wikipedia
– “FBI Statistics Show Major Reduction in Violent Crime Rates” – WanttoKnow.info
– “List of motor vehicle deaths in U.S. by year” – Wikipedia
– “Prevalence of tobacco consumption” – Wikipedia
– “Human error accounts for 90% of road accidents” – Olivia Olarte – AlertDriving.com
– “Autonomous car” – Wikipedia
– “Iterative Learning versus the Student-Debt Trap” – Essay and Video by G. Stolyarov II

Life Extension and Risk Aversion – Article by G. Stolyarov II

Life Extension and Risk Aversion – Article by G. Stolyarov II

The New Renaissance Hat
G. Stolyarov II
April 28, 2013
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A major benefit of longer lifespans is the cultivation of a wide array of virtues. Prudence and forethought are among the salutary attributes that the lengthening of human life expectancies – hopefully to the point of eliminating any fixed upper bound – would bring about.

Living longer renders people more hesitant to risk their lives, for the simple reason that they have many more years to lose than their less technologically endowed ancestors.

This is not science fiction or mere speculation; we see it already. In the Western world, average life expectancies increased from the twenties and thirties in the Middle Ages to the early thirties circa 1800 to the late forties circa 1900 to the late seventies and early eighties in our time. As Steven Pinker writes in his magnum opus, The Better Angels of Our Nature, the overall trend in the Western world (in spite of temporary spikes of conflict, such as the World Wars) has been toward greater peace and increased reluctance of individuals to throw their lives away in armed struggles for geopolitical gain. Long-term declines in crime rates, automobile fatalities, and even smoking have accompanied (and contributed to) rises in life expectancy. Economic growth and improvements in the technologies of production help as well. If a person has not only life but material comfort to lose, this amplifies the reluctance to undertake physical risks even further.

Yet, with today’s finite lifespans, most individuals still find a non-negligible degree of life-threatening risk in their day-to-day endeavors to be an unavoidable necessity. Most people in the United States need to drive automobiles to get to work – in spite of the risk of sharing the road with incompetent, intoxicated, or intimidating other drivers. Over 30,000 people perish every year in the United States alone as a result of that decision. While the probability for any given individual of dying in an automobile accident is around 11 in 100,000 (0.011%) per year, this is still unacceptably high. How would a person with several centuries, several millennia, or all time ahead of him feel about this probability? Over a very long time, the probability of not encountering such a relatively rare event asymptotically approaches zero. For instance, at today’s rate of US automobile fatalities, a person living 10000 years would have a probability of (1 – 0.00011)^10000 = 0.3329 – a mere 33.29% likelihood – of not dying in an automobile accident! If you knew that a problem in this world had a two-thirds probability of killing you eventually, would you not want to do something about it?

Of course, the probabilities of tragic events are not fixed or immutable. They can be greatly affected by individual choices – our first line of defense against life-threatening risks. Well-known risk-management strategies for reducing the likelihood of any damaging event include (1) avoidance (not pursuing the activity that could cause the loss – e.g., not driving on a rugged mountain road – but this is not an option in many cases), (2) loss prevention (undertaking measures, such as driving defensively, that allow one to engage in the activity while lowering the likelihood of catastrophic failure), and (3) loss reduction (undertaking measures, such as wearing seat belts or driving in safer vehicles, that would lower the amount of harm in the event of a damaging incident). Individual choices, of course, cannot prevent all harms. The more fundamental defense against life-threatening accidents is technology. Driving itself could be made safer by replacing human operators, whose poor decisions cause over 90% of all accidents, with autonomous vehicles – early versions of which are currently being tested by multiple companies worldwide and have not caused a single accident to date when not manually driven.

Today, forward-thinking technology companies such as Google are driving the autonomous-vehicle revolution ahead. There is, unfortunately, no large clamor by the public for these life-saving cars yet. However, as life expectancies lengthen, that clamor will surely be heard. When we live for centuries and then for millennia, we will view as barbarous the age when people were expected to take frightening risks with their irreplaceable existences, just to make it to the office every morning. We will see the attempt to manually operate a vehicle as a foolish and reckless gamble with one’s life – unless one is a professional stunt driver who would earn millions in whatever future currency will then exist.

But living longer will accomplish more than just a changed perspective toward the risks presently within our awareness. Because of our expanded scope of personal interest, we will begin to be increasingly aware of catastrophes that occur at much longer intervals than human lifespans have occupied to date. The impacts of major earthquakes and volcano eruptions, recurring ice ages, meteor strikes, and continental drift will begin to become everyday concerns, with far more individuals devoting their time, money, and attention to developing technological solutions to these hitherto larger-than-human-scale catastrophes. With even more radically lengthened lifespans, humans will be motivated to direct their efforts, including the full thrust of scientific research, toward overcoming the demise of entire solar systems. In the meantime, there would be less tolerance for any pollution that could undermine life expectancies or the long-term sustainability of a technological infrastructure (which, of course, would be necessary for life-extension treatments to continue keeping senescence at bay). Thus, a society of radical life extension will embrace market-generated environmentally friendly technologies, including cleaner energy sources, reuse of raw materials (for instance, as base matter for 3D printing and nanoscale fabrication), and efficient targeting of resources toward their intended purposes (e.g., avoidance of wasted water in sprinkler systems or wasted paper in the office).

When life is long and good, humans move up on the hierarchy of needs. Not starving today ceases to be a worry, as does not getting murdered tomorrow. The true creativity of human faculties can then be directed toward addressing the grand, far more interesting and technologically demanding, challenges of our existence on this Earth.

Some might worry that increased aversion to physical risk would dampen human creativity and discourage people from undertaking the kinds of ambitious and audacious projects that are needed for technological breakthroughs to emerge and spread. However, aversion to physical risk does not entail aversion to other kinds of risk – social, economic, or political. Indeed, social rejection or financial ruin are not nearly as damaging to a person with millennia ahead of him as they are to a person with just a few decades of life left. A person who tries to run an innovative business and fails can spend a few decades earning back the capital needed to start again. Today, few entrepreneurs have that second chance. Most do not even have a first chance, as the initial capital needed for a groundbreaking enterprise is often colossal. Promising ideas and a meritorious character do not guarantee one a wealthy birth, and thus even the best innovators must often start with borrowed funds – a situation that gives them little room to explore the possibilities and amplifies their ruin if they fail.  The long-lived entrepreneurs in a world of indefinite life extension would tend to earn their own money upfront and gradually go into business for themselves as they obtain the personal resources to do so. This kind of steady, sustainable entry into a line of work allows for a multitude of iterations and experiments that maximize the probability of a breakthrough.

Alongside the direct benefits of living longer and the indirect benefits of the virtues cultivated thereby, indefinite life extension will also produce less stressful lives for most. The less probability there is of dying or becoming seriously injured or ill, the easier one can breathe as one pursues day-to-day endeavors of self-improvement, enjoyment, and productive work. The less likely a failure is to rob one of opportunities forever, the more likely humans will be to pursue the method of iterative learning and to discover new insights and improved techniques through a beneficent trial-and-error process, whose worst downsides will have been curtailed through technology and ethics. Life extension will lead us to avoid and eliminate the risks that should not exist, while enabling us to safely pursue the risks that could benefit us if approached properly.

Strategies for Hastening the Arrival of Indefinite Life Extension – Article by G. Stolyarov II

Strategies for Hastening the Arrival of Indefinite Life Extension – Article by G. Stolyarov II

The New Renaissance Hat
G. Stolyarov II
April 3, 2013
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We are still several decades away from a time when medical technology will be able keep senescence and death at bay. What can we do until then to hasten the arrival of radical extension and to improve our own chances of benefiting from it? I recently offered my thoughts on this matter on an Immortal Life debate/discussion thread. My proposed approach is versatile and can be distilled into five essential points.

1. Personal Good Health. Each advocate of indefinite life extension should try to personally remain in good health as long as possible. This mostly involves common-sense practices (exercise, moderation in food, as well as avoidance of harmful substances, dangerous habits, and risky pleasures).

2. Utilization of Comparative Advantage. Each advocate of indefinite life extension should work to advance it in the areas where he/she has a comparative advantage. I am sympathetic to Peter Wicks’s statements in this regard – with the caveat that finding what one is best at is an iterative process that requires trying out many approaches and pursuits to discover one’s strengths and the best ways of actualizing them. Moreover, an individual may have multiple areas of strength, and in that case should discover how best to synthesize those areas and use them complementarily. But, crucially, one should not feel constrained to personally follow specific career paths, such as biogerontological research. Rather, one could make a more substantial contribution by maximally utilizing one’s areas of strength, knowledge, and expertise – and contributing some of the proceeds to research on and advocacy of indefinite life extension.

3. Advocacy. As Aubrey de Grey has put it, insufficient funding is a major obstacle to the progress of life-extension research at present. The scientists who are capable of carrying out the research are already here, and they are motivated. They need more support in the form of donations, which can be achieved with enough advocacy and persuasion of the general public (as well as wealthy philanthropists). In this respect, I agree with Franco Cortese that an additional promoter today may make more of a difference than an additional researcher, because the work of the promoters may ensure steady employment for the researchers in the field of anti-aging interventions. My Resources on Indefinite Life Extension (RILE) page catalogues a sampling of the major advances in fighting disease and developing new promising technologies that have occurred in the past several years. If only more people knew… The Movement for Indefinite Life Extension (MILE) attempts to raise this awareness and has been gaining support and recognition at an encouraging pace. You can add to this progress by exploring and liking the MILE Facebook page.

4. Forthrightness. It is important for all advocates of indefinite life extension to be open about their views and to be ready to justify them – even casually and in passing. The idea needs to be made sufficiently commonplace that most people will not only take it seriously but will consider it to be a respectable position within public discourse. At that point, increased funding for research will come.

5. Innovative Education. As my previous points imply, education is key. But education on indefinite life extension needs to be made appealing not just in terms of content, but in terms of the learning process. This is where creativity should be utilized to create an engaging, entertaining, and addictive open curriculum of reading materials and digital certifications, compatible with an Open Badge infrastructure. I have begun to do this with several multiple-choice quizzes pertaining to some of my articles, and I welcome and encourage any similar efforts by others.